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首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Extracting knowledge for product form design by using multiobjective optimisation and rough sets
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Extracting knowledge for product form design by using multiobjective optimisation and rough sets

机译:通过使用多目标优化和粗糙集来提取产品表单设计的知识

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Industrial product form design has become consumer-centred. Affective responses related to consumers' affective needs are considered invaluable for product form design and have attracted increasing attention. When designing product forms, designers should thoroughly understand the design knowledge concerning multiple affective responses and design variables. This paper proposes a systematic approach to extraction of design knowledge by using multiobjective optimisation and rough sets. Design analysis is first employed to determine design variables and multiple affective responses. As per the results, a multiobjective optimisation model is constructed that involves optimising the multiple affective responses. An improved version of the strength Pareto evolutionary algorithm (SPEA2) is adopted to solve the multiobjective optimisation model and generate the Pareto optimal solutions. Based on these Pareto optimal solutions, rough sets are employed to extract design knowledge that is common to these Pareto optimal solutions. A car profile design was employed as a case study to illustrate the proposed approach. The results suggest that the proposed approach is time- and cost-efficient and can effectively extract design knowledge that provides suitable insight into product form design.
机译:工业产品的外观设计已变得以消费者为中心。与消费者的情感需求相关的情感反应被认为对产品形式设计非常重要,并且引起了越来越多的关注。设计产品表格时,设计人员应彻底了解有关多种情感反应和设计变量的设计知识。本文提出了一种利用多目标优化和粗糙集来提取设计知识的系统方法。首先采用设计分析来确定设计变量和多种情感反应。根据结果​​,构建了涉及优化多个情感反应的多目标优化模型。采用了改进的强度帕累托进化算法(SPEA2)来求解多目标优化模型并生成帕累托最优解。基于这些Pareto最优解,采用粗糙集来提取这些Pareto最优解共有的设计知识。以汽车轮廓设计为案例研究来说明所提出的方法。结果表明,所提出的方法既省时又节省成本,并且可以有效地提取设计知识,从而提供对产品表单设计的适当见解。

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